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四取代烯烃与烯丙基砜的双分子交叉复分解反应。

Bimolecular Cross-Metathesis of a Tetrasubstituted Alkene with Allylic Sulfones.

作者信息

Sapkota Rishi R, Jarvis Jacqueline M, Schaub Tanner M, Talipov Marat R, Arterburn Jeffrey B

机构信息

Department of Chemistry and Biochemistry New Mexico State University Las Cruces NM, 88003.

Chemical Analysis and Instrumentation Laboratory, College of Agricultural, Consumer and Environmental Sciences New Mexico State University Las Cruces NM, 88003.

出版信息

ChemistryOpen. 2019 Feb 14;8(2):201-205. doi: 10.1002/open.201800296. eCollection 2019 Feb.

Abstract

Exquisite control of catalytic metathesis reactivity is possible through ligand-based variation of ruthenium carbene complexes. Sterically hindered alkenes, however, remain a generally recalcitrant class of substrates for intermolecular cross-metathesis. Allylic chalcogenides (sulfides and selenides) have emerged as "privileged" substrates that exhibit enhanced turnover rates with the commercially available second-generation ruthenium catalyst. Increased turnover rates are advantageous when competing catalyst degradation is limiting, although specific mechanisms have not been defined. Herein, we describe facile cross-metathesis of allylic sulfone reagents with sterically hindered isoprenoid alkene substrates. Furthermore, we demonstrate the first example of intermolecular cross-metathesis of ruthenium carbenes with a tetrasubstituted alkene. Computational analysis by combined coupled cluster/DFT calculations exposes a favorable energetic profile for metallacyclobutane formation from chelating ruthenium β-chalcogenide carbene intermediates. These results establish allylic sulfones as privileged reagents for a substrate-based strategy of cross-metathesis derivatization.

摘要

通过钌卡宾配合物基于配体的变化,可以实现对催化复分解反应活性的精确控制。然而,空间位阻烯烃对于分子间交叉复分解反应而言,仍然是一类普遍难以处理的底物。烯丙基硫属化物(硫化物和硒化物)已成为“特殊”底物,与市售第二代钌催化剂反应时表现出更高的周转率。当竞争性催化剂降解起限制作用时,提高周转率是有利的,尽管具体机制尚未明确。在此,我们描述了烯丙基砜试剂与空间位阻类异戊二烯烯烃底物之间的简便交叉复分解反应。此外,我们展示了钌卡宾与四取代烯烃进行分子间交叉复分解反应的首个实例。通过耦合簇/密度泛函理论联合计算进行的计算分析揭示了由螯合钌β-硫属化物卡宾中间体形成金属环丁烷的有利能量分布。这些结果确立了烯丙基砜作为基于底物的交叉复分解衍生化策略的特殊试剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c90/6376213/9394bb58ad68/OPEN-8-201-g001.jpg

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